English

Gravitational Decoupling and Picard-Lefschetz

High Energy Physics - Theory 2018-01-10 v1

Abstract

In this work, we consider tunneling between non-metastable states in gravitational theories. Such processes arise in various contexts, e.g., in inflationary scenarios where the inflaton potential involves multiple fields or multiple branches. They are also relevant for bubble wall nucleation in some cosmological settings. However, we show that the transition amplitudes computed using the Euclidean method generally do not approach the corresponding field theory limit as MpM_{p}\rightarrow \infty. This implies that in the Euclidean framework, there is no systematic expansion in powers of GNG_{N} for such processes. Such considerations also carry over directly to no-boundary scenarios involving Hawking-Turok instantons. In this note, we illustrate this failure of decoupling in the Euclidean approach with a simple model of axion monodromy and then argue that the situation can be remedied with a Lorentzian prescription such as the Picard-Lefschetz theory. As a proof of concept, we illustrate with a simple model how tunneling transition amplitudes can be calculated using the Picard-Lefschetz approach.

Keywords

Cite

@article{arxiv.1710.04737,
  title  = {Gravitational Decoupling and Picard-Lefschetz},
  author = {Jon Brown and Alex Cole and William Cottrell and Gary Shiu},
  journal= {arXiv preprint arXiv:1710.04737},
  year   = {2018}
}

Comments

26 pages, 5 figures

R2 v1 2026-06-22T22:12:09.355Z